Cargando…

Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission

In this paper, we investigate the embryonic stage of oxidation of an epi Ge(001)-2 × 1 by atomic oxygen and molecular O(2) via synchrotron radiation photoemission. The topmost buckled surface with the up- and down-dimer atoms, and the first subsurface layer behaves distinctly from the bulk by exhibi...

Descripción completa

Detalles Bibliográficos
Autores principales: Cheng, Yi-Ting, Wan, Hsien-Wen, Cheng, Chiu-Ping, Kwo, Jueinai, Hong, Minghwei, Pi, Tun-Wen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6523174/
https://www.ncbi.nlm.nih.gov/pubmed/30987390
http://dx.doi.org/10.3390/nano9040554
_version_ 1783419273188737024
author Cheng, Yi-Ting
Wan, Hsien-Wen
Cheng, Chiu-Ping
Kwo, Jueinai
Hong, Minghwei
Pi, Tun-Wen
author_facet Cheng, Yi-Ting
Wan, Hsien-Wen
Cheng, Chiu-Ping
Kwo, Jueinai
Hong, Minghwei
Pi, Tun-Wen
author_sort Cheng, Yi-Ting
collection PubMed
description In this paper, we investigate the embryonic stage of oxidation of an epi Ge(001)-2 × 1 by atomic oxygen and molecular O(2) via synchrotron radiation photoemission. The topmost buckled surface with the up- and down-dimer atoms, and the first subsurface layer behaves distinctly from the bulk by exhibiting surface core-level shifts in the Ge 3d core-level spectrum. The O(2) molecules become dissociated upon reaching the epi Ge(001)-2 × 1 surface. One of the O atoms removes the up-dimer atom and the other bonds with the underneath Ge atom in the subsurface layer. Atomic oxygen preferentially adsorbed on the epi Ge(001)-2 ×1 in between the up-dimer atoms and the underneath subsurface atoms, without affecting the down-dimer atoms. The electronic environment of the O-affiliated Ge up-dimer atoms becomes similar to that of the down-dimer atoms. They both exhibit an enrichment in charge, where the subsurface of the Ge layer is maintained in a charge-deficient state. The dipole moment that was originally generated in the buckled reconstruction no longer exists, thereby resulting in a decrease in the ionization potential. The down-dimer Ge atoms and the back-bonded subsurface atoms remain inert to atomic O and molecular O(2), which might account for the low reliability in the Ge-related metal-oxide-semiconductor (MOS) devices.
format Online
Article
Text
id pubmed-6523174
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-65231742019-06-03 Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission Cheng, Yi-Ting Wan, Hsien-Wen Cheng, Chiu-Ping Kwo, Jueinai Hong, Minghwei Pi, Tun-Wen Nanomaterials (Basel) Article In this paper, we investigate the embryonic stage of oxidation of an epi Ge(001)-2 × 1 by atomic oxygen and molecular O(2) via synchrotron radiation photoemission. The topmost buckled surface with the up- and down-dimer atoms, and the first subsurface layer behaves distinctly from the bulk by exhibiting surface core-level shifts in the Ge 3d core-level spectrum. The O(2) molecules become dissociated upon reaching the epi Ge(001)-2 × 1 surface. One of the O atoms removes the up-dimer atom and the other bonds with the underneath Ge atom in the subsurface layer. Atomic oxygen preferentially adsorbed on the epi Ge(001)-2 ×1 in between the up-dimer atoms and the underneath subsurface atoms, without affecting the down-dimer atoms. The electronic environment of the O-affiliated Ge up-dimer atoms becomes similar to that of the down-dimer atoms. They both exhibit an enrichment in charge, where the subsurface of the Ge layer is maintained in a charge-deficient state. The dipole moment that was originally generated in the buckled reconstruction no longer exists, thereby resulting in a decrease in the ionization potential. The down-dimer Ge atoms and the back-bonded subsurface atoms remain inert to atomic O and molecular O(2), which might account for the low reliability in the Ge-related metal-oxide-semiconductor (MOS) devices. MDPI 2019-04-04 /pmc/articles/PMC6523174/ /pubmed/30987390 http://dx.doi.org/10.3390/nano9040554 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cheng, Yi-Ting
Wan, Hsien-Wen
Cheng, Chiu-Ping
Kwo, Jueinai
Hong, Minghwei
Pi, Tun-Wen
Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title_full Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title_fullStr Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title_full_unstemmed Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title_short Microscopic Views of Atomic and Molecular Oxygen Bonding with epi Ge(001)-2 × 1 Studied by High-Resolution Synchrotron Radiation Photoemission
title_sort microscopic views of atomic and molecular oxygen bonding with epi ge(001)-2 × 1 studied by high-resolution synchrotron radiation photoemission
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6523174/
https://www.ncbi.nlm.nih.gov/pubmed/30987390
http://dx.doi.org/10.3390/nano9040554
work_keys_str_mv AT chengyiting microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission
AT wanhsienwen microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission
AT chengchiuping microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission
AT kwojueinai microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission
AT hongminghwei microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission
AT pitunwen microscopicviewsofatomicandmolecularoxygenbondingwithepige00121studiedbyhighresolutionsynchrotronradiationphotoemission